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Classification and Skimming of Articles for an Effective News Browsing

机译:有效浏览新闻的文章分类和摘要

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摘要

In order to browse the news video effectively, classification and skimming of news articles are positively essential. In this paper, we propose the classification and skimming of articles for an effective news browsing. The classification method uses tags to distinguish speakers in the closed-caption. The skimming method extracts the representative sentence from the part of article introduced by the anchor in the closed-caption and the representative frames consisting of anchor frame, open-caption frames, and frames synchronized with high-frequency terms. In the experiment, we have applied the proposed classification and skimming methods to news video with Korean closed-captions, and have empirically confirmed that the proposed methods could support effective browsing of news videos.
机译:为了有效地浏览新闻视频,对新闻文章进行分类和摘要非常重要。在本文中,我们建议对文章进行分类和浏览,以实现有效的新闻浏览。分类方法使用标签来区分隐藏字幕中的说话者。略读方法从隐藏字幕中的锚点引入的文章部分以及由锚点框架,开放字幕框架和与高频术语同步的框架组成的代表性框架中提取代表句子。在实验中,我们将拟议的分类和略读方法应用于带有韩国字幕的新闻视频,并通过经验证实了所提出的方法可以支持新闻视频的有效浏览。

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